A heat-dissipating fan includes a casing having an air outlet, a base mounted in the air outlet, an impeller being mounted on the base and having a plurality of blades, a plurality of ribs each extending between the base and the casing along a radial direction of the base, and at least two air-guiding ring fixedly mounted to the ribs. The air-guiding rings vary in inclinations along a longitudinal direction of the casing. The air-guiding ring guides airflow in various directions, and divides airflow passing through the air outlet when the impeller is turning.
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1. A heat-dissipating fan comprising:
a casing having an air outlet;
a base mounted in the air outlet, an impeller being adapted to be mounted on the base and having a plurality of blades;
a plurality of ribs each extending between the base and the casing along a radial direction of the base; and
at least two air-guiding rings co-axially arranged and fixedly mounted to the ribs, wherein one of said air-guiding rings includes an annular inner face extending downstream and radially inward, and an annular outer face extending downstream and radially outward.
6. A heat-dissipating fan comprising:
a casing having an air outlet;
a base mounted in the air outlet, an impeller being adapted to be mounted on the base and having a plurality of blades;
a plurality of ribs each extending between the base and the casing along a radial direction of the base;
at least one first air-guiding ring fixedly mounted to the ribs and located between the base and the casing, said first air-guiding ring including an annular inner face extending downstream and radially inward, and an outer face extending downstream and radially outward; and
at least one second air-guiding ring fixedly mounted to the ribs and located between the first guiding ring and the casing, said second air-guiding ring including an annular inner face extending downstream and radially inward, and an annular outer face extending downstream and radially outward,
wherein said annular inner faces of the first and second air-guiding rings vary in inclinations along a longitudinal direction of the casing; and said annular outer faces of the first and second air-guiding rings vary in inclinations along a longitudinal direction of the casing.
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This application is a continuation-in-part application of U.S. patent Ser. No. 10/642,636, filed on Aug. 19, 2003 now U.S. Pat. No. 6,910,862.
1. Field of the Invention
The present invention relates to an airflow guiding structure for a heat-dissipating fan. In particular, the present invention relates to the airflow guiding structure varying in inclinations of air-guiding rings for the heat-dissipating fan.
2. Description of Related Art
Although the above-mentioned heat-dissipating fan provides a certain heat-dissipating effect, the heat-dissipating operation can only be performed on an object directly below the air outlet 12, as the airflow can only flow along an axial direction of the casing 10. In a case that the object is not located directly below the air outlet 12, the airflow cannot flow through the object in a uniform manner, resulting in non-uniform heat dissipation and poor heat-dissipating effect. On the other hand, since the object is generally disposed within a limited space such as in a notebook type computer (or a laptop computer) in a position not directly below the base 13 or outside the area of air outlet, the heat-dissipating effect is adversely affected. The heat-dissipating effect is also adversely affected if the object is too large to be completely within an area directly below the heat-dissipating fan. Further, turbulence tends to occur when the airflow is passing through the ribs 14. Noise is thus generated while having a lower heat-dissipating effect.
An object of the present invention is to provide an air-guiding structure varying in inclinations of air-guiding rings for a heat-dissipating fan that includes at least two air-guiding rings in an air outlet of the heat-dissipating fan for concentrating and guiding airflow, increasing wind pressure, reducing wind noise, and improving the overall heat-dissipating efficiency.
Another object of the present invention is to provide an air-guiding structure varying in inclinations of air-guiding rings for a heat-dissipating fan that includes at least two air-guiding rings in an air outlet of the heat-dissipating fan. The air-guiding rings are co-axially arranged relative to a longitudinal direction of the casing, thereby concentrating and guiding airflow, increasing wind pressure, reducing wind noise, and improving the overall heat-dissipating efficiency.
A further object of the present invention is to provide an air-guiding structure varying in inclinations of air-guiding rings for a heat-dissipating fan that includes at least two air-guiding rings in an air outlet of the heat-dissipating fan. Each inclination angle of the air-guiding ring is selected to guide airflow to a desired area for concentrated heat dissipation or for enlarging the heat-dissipating area, thereby improving the overall heat-dissipating efficiency and making the assembly and design of the heat-dissipating fan more flexible.
In accordance with a first aspect of the invention, a heat-dissipating fan includes a casing having an air outlet, a base mounted in the air outlet, an impeller being mounted on the base and having a plurality of blades, a plurality of ribs each extending between the base and the casing along a radial direction of the base, and at least two air-guiding rings fixedly mounted to the ribs. The air-guiding ring has an axial length that is greater than a radial width of the air-guiding ring in the radial direction. The air-guiding ring guides and divides airflow passing through the air outlet when the impeller is turning.
In an embodiment of the invention, at least one of the air-guiding rings extends in an inclination relative to a longitudinal direction of the casing. In another embodiment of the invention, at least one of the air-guiding rings extends downward and radially outward. In a further embodiment of the invention, at least one of the air-guiding rings extends downward and radially inward.
In still another embodiment of the invention, at least one of the air-guiding rings includes an annular inner face extending downward and radially inward and an annular outer face extending downward and radially outward. The air-guiding ring has a triangular section, with the annular inner face and the annular outer face connecting each other at a common annular ridge.
The ribs may incline along an air-driving direction of the blades of the impeller. Each rib has two rib sections arranged along the air-guiding ring, with the rib sections having different inclination angles. The air-guiding ring may include a rounded guiding portion in a top thereof adjacent to an air inlet side of the casing.
In accordance with a second aspect of the invention, a heat-dissipating fan includes a casing having an air outlet, a base mounted in the air outlet, an impeller being mounted on the base and having a plurality of blades, a plurality of ribs each extending between the base and the casing along a radial direction of the base, a first air-guiding ring fixedly mounted to the ribs and located between the base and the casing, and a second air-guiding ring fixedly mounted to the ribs and located between the first air-guiding ring and the casing. The first air-guiding ring and the second air-guiding ring commonly guide and divide airflow passing through the air outlet when the impeller is turning.
Preferably, each of the first air-guiding ring and the second air-guiding ring has an axial length and a width in the radial direction, with the axial length being greater than the radial width.
In an embodiment of the invention, the first air-guiding ring extends downward and radially outward and the second air-guiding ring extends downward and radially inward. In another embodiment of the invention, the first air-guiding ring extends downward and radially inward and the second guiding ring extends downward and radially outward.
In a further embodiment of the invention, the first air-guiding ring includes an annular inner face extending downward and radially inward and an annular outer face extending downward and radially outward, and the second air-guiding ring includes an annular inner face extending downward and radially inward and an annular outer face extending downward and radially outward. Each of the first air-guiding ring and the second air-guiding ring has a triangular section, with the annular inner face and the annular outer face of the first air-guiding ring connecting each other at a common annular ridge, and with the annular inner face and the annular outer face of the second air-guiding ring connecting each other at another common annular ridge.
Other objects, advantages and novel features of this invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
Preferred embodiments of the present invention are now to be described hereinafter in detail, in which the same reference numerals are used in the preferred embodiments for the same parts as those in the prior art to avoid redundant description.
Referring to
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Further, as illustrated in
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The first air-guiding rings 15a, 15a′ extend downward (downstream) and radially inward, and vary in inclinations along a longitudinal direction of the casing 10. Similarly, the second air-guiding rings 15b, 15b′ extend downward and radially outward, and vary in inclinations along a longitudinal direction of the casing 10. A gap 19 is defined between a lower end of the first air-guiding ring 15a and a lower end of the second air-guiding ring 15b, as best shown in
By this arrangement, an intermediate portion 18 of the airflow is guided to an area directly below the gap 19 between first and second air-guiding rings 15a, 15a′, 15b and 15b′ to concentrate the airflow and to improve the heat-dissipating effect of an object located in this area. Further, following the inclining directions of the first and second air-guiding rings 15a, 15a′, 15b and 15b′, varying in inclinations of the first air-guiding rings 15a, 15a′ or the second air-guiding rings 15b, 15b′ may increase the wind pressure in the air outlet 12. Further, since the wind pressure in the intermediate portion 18 of airflow is increased, an inner portion 17 of the airflow and an outer portion 16 of the airflow tend to flow toward the area directly below the gap 19 between the first air-guiding rings 15a, 15a′ and the second air-guiding rings 15b, 15b′, thereby dissipating heat with concentrated airflow.
By this arrangement, an inner portion 17 of the airflow is directed toward an area directly below the base 13, and an outer portion 16 of the airflow is directed toward an area outside the air outlet 12. The area subjected to heat-dissipating operation is increased. This arrangement is also applicable to a limited space for reliably guiding airflow to an object not directly located below the air outlet 12 and to an object having a relatively large size for more uniform heat dissipation. Further, following the inclining directions of the first and second air-guiding rings 15a, 15a′, 15b and 15b′, varying in inclinations of the first air-guiding rings 15a, 15a′ or the second air-guiding rings 15b, 15b′ may increase the wind pressure in the air outlet 12. Further, since the wind pressures of the inner portion 17 of the airflow and the outer portion 16 of the airflow are increased, the middle portion 18 of the airflow between the first air-guiding rings 15a, 15a′ and second air-guiding rings 15b, 15b′ tend to flow toward an area directly below the base 13 and an area outside the air outlet 12, providing concentrated airflow for heat dissipation.
By this arrangement, the airflow is divided by the first and second air-guiding rings 15′ and 15″ into an inner portion 17 that is directed toward an area directly below the base 13, an intermediate portion 18 below an area between the first and second air-guiding rings 15′ and 15″, and an outer portion 16 that is directed toward an area outside the air outlet 12. The heat-dissipating area is thus increased. Further, following the inclining direction of the first and second air-guiding rings 15′ and 15″, varying in inclinations of the annular inner faces 154, 156 or the annular outer faces 155, 157 of the first and second air-guiding rings 15′, 15″ may increase the wind pressure in the air outlet 12, as the sectional area in the air outlet side is decreased.
Further, as illustrated in
While the principles of this invention have been disclosed in connection with specific embodiments, it should be understood by those skilled in the art that these descriptions are not intended to limit the scope of the invention, and that any modification and variation without departing the spirit of the invention is intended to be covered by the scope of this invention defined only by the appended claims.
Horng, Alex, Hong, Ching-Sheng, Hong, Ying-Rong
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Apr 18 2005 | HORNG, ALEX | SUNONWEALTH ELECTRIC MACHINE INDUSTRY CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 016493 | /0560 | |
Apr 18 2005 | HONG, YIN-RONG | SUNONWEALTH ELECTRIC MACHINE INDUSTRY CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 016493 | /0560 | |
Apr 18 2005 | HONG, CHING-SHENG | SUNONWEALTH ELECTRIC MACHINE INDUSTRY CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 016493 | /0560 | |
Apr 19 2005 | Sunonwealth Electric Machine Industry Co., Ltd. | (assignment on the face of the patent) | / |
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